Chauhan Nishant, Barton Samuel, Zarkogiannis Stergios, Rickaby Rosalind E M
Department of Earth Sciences, University of Oxford, South Parks Road, OX1 3AN, UK.
J Plankton Res. 2024 Jun 12;46(4):383-386. doi: 10.1093/plankt/fbae032. eCollection 2024 Jul-Aug.
The coccolithophore produces distinct coccolith morphotypes and offers a unique insight into coccolith calcification, as the number of lopadoliths per cell increases under low light intensities. This study employs to investigate the acclimated impact of light intensity and wavelength on cell physiology and coccosphere morphology. Our findings reveal a marked increase in lopadolith production when grown under reduced light intensity, with lower growth rates, higher chlorophyll concentration and elevated net photosynthetic rates. Reduced blue-light also caused an increase in lopadolith numbers, elevated chlorophyll concentrations and net photosynthetic rates. Conversely, such responses are less pronounced under reduced red-light. Moreover, reduced blue- and red-light treatments exhibited enhanced growth rates compared to the light-replete control, despite a reduction in light intensity. Our findings suggest that changes in light quality cause a shift in the coccosphere morphology, affecting cell physiology and potentially aiding light harvesting in .
颗石藻产生独特的颗石形态类型,并为颗石钙化提供了独特的见解,因为在低光照强度下每个细胞的叶状颗石数量会增加。本研究旨在调查光照强度和波长对细胞生理和球石圈形态的适应性影响。我们的研究结果表明,在光照强度降低的条件下生长时,叶状颗石的产量显著增加,生长速率较低,叶绿素浓度较高,净光合速率升高。蓝光减少也会导致叶状颗石数量增加、叶绿素浓度升高和净光合速率提高。相反,在红光减少的情况下,这种反应不太明显。此外,与光照充足的对照相比,尽管光照强度降低,但蓝光和红光减少处理的生长速率有所提高。我们的研究结果表明,光质的变化会导致球石圈形态的转变,影响细胞生理,并可能有助于在……中捕获光能。